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I have a Perl wrapper script, wrapper, which exec's another tool after setting some environment variables. The tools which the wrapper may invoke are symlinked to wrapper, and it dynamically determines the tool which has symlinked to it by evaluating basename($0). Here's a contrived example to illustrate:

[/tmp]$ cat wrapper
#!/usr/bin/perl    
use File::Basename;

$ENV{'CUSTOM_ENVIRONMENT'} = '1';

my $scriptName = basename($0);
exec("scripts/${scriptName}");

[/tmp]$ chmod +x wrapper
[/tmp]$ cat scripts/foo
#!/bin/sh
echo "foo"

[/tmp]$ ln -s wrapper foo
[/tmp]$ ./foo 
foo

I would like to avoid needing the dummy foo symlink and explicitly set $0 before invoking wrapper directly. Is it possible to explicitly set $0 before invoking a Perl script?

I know I can assign to $0 from within wrapper, but I'd like to set the value of $0 to be used before I invoke wrapper, so I can spoof the file name that Perl thinks is being run.

I've scanned through perlrun and perlvar but haven't found anything.

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Could You describe a little bit more details about what You would like to do? The caller should be present in the system, so either a hard- or symlink or an alias or rather a bash function has to be defined to be able to call from prompt. So if You do want to create symlink, you should define alias or a function in .bash_profile (or alike) or pass an argument to wrapper and call it as wrapper foo (or similar). But maybe I misinterpreted your goal. –  TrueY Jul 10 '13 at 8:07
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2 Answers

up vote 1 down vote accepted

Here's a possible hack:

perl -e '$0="something_else"; do "/path/to/wrapper"'
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Thanks, this seems to work so far –  Stuart M Jul 10 '13 at 8:17
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Here is a wrapper wrapper:

open (my $wrapper, "<", "wrapper") or die("$!");
my $c = '$0 = "SPOOF";'.join("", <$wrapper>);
close ($wrapper);
eval $c; 
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